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Model-based Fault-Tolerant Control of Uncertain Particulate Processes: Integrating Fault Detection, Estimation and Accommodation

机译:不确定微粒过程的基于模型的容错控制:集成故障检测,估计和适应

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This work presents a methodology for the integrated identification, estimation and accommodation of control actuator faults in particulate processes with discretely-sampled measurements and plant-model mismatch. Initially, a stabilizing state feedback controller is designed on the basis of a reduced-order model of the infinite-dimensional system, and the closed-loop stability region is characterized in terms of the model uncertainty, the fault magnitude, the sampling period and the control design parameters. When state measurements are unavailable, the reduced-order inter-sample model predictor generates state estimates which are updated at each sampling time. A moving-horizon optimization problem is then formulated and solved for on-line actuator fault detection, isolation and estimation using past state and input data. The resulting estimates are used to locate the operating point with respect to the closed-loop stability region, which in turn is used to carry out the fault accommodation logic via updating the pot-fault control model and/or adjusting the controller design parameters. The developed methodology is illustrated using a non-isothermal continuous crystallizer example.
机译:这项工作提出了一种方法,用于通过离散采样测量和工厂模型不匹配,对颗粒过程中的控制执行器故障进行综合识别,估计和处理。最初,在无穷维系统的降阶模型的基础上,设计了一个稳定状态反馈控制器,并根据模型的不确定性,故障幅值,采样周期和响应时间对闭环稳定区域进行了表征。控制设计参数。当状态测量不可用时,降阶样本间模型预测器会生成状态估计值,并在每个采样时间进行更新。然后制定运动水平优化问题,并使用过去的状态和输入数据解决在线执行器故障的检测,隔离和估计问题。所得的估计值用于相对于闭环稳定区域定位工作点,该工作点又用于通过更新故障保护控制模型和/或调整控制器设计参数来执行故障适应逻辑。使用非等温连续结晶器示例说明了开发的方法。

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